Optimization of segmented thermoelectric power generators from waste heat while considering the influence of temperature on materials

IF 0.5 Q4 ENGINEERING, MULTIDISCIPLINARY
W. Cao, Baolin Wang, Jianzhuang Xu, Jie Lei, Meiying Huang, Ruifang Zhang, C. Bluth
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引用次数: 0

Abstract

Thermoelectric technology is commonly used in waste heat utilization of automotive internal combustion engines and widely combined with solar energy units to form solar thermoelectric generator systems. The structure of the Thermoelectric Generator (TEG) needs to be optimized in order to obtain better performance for wider applications. In this paper, the influence of temperature on the height of PN-type thermoelectric arms was analyzed using an improved one-dimensional heat conduction model with the calculus method. At the same time, both the calculation formula of the maximum output power and the calculation formula of various size parameters of the TEG was derived when the influence of temperature on the performance of thermoelectric materials has been considered. In addition, the relationships among different size parameters were derived to obtain the maximum efficiency. The relationships include the most commonly used classical optimization relationship, that is, when the Seebeck coefficient, thermal conductivity and resistivity are averaged, the relationship is consistent with the classical optimization relationship. By considering the impact of temperature on the performance of thermoelectric materials, an improved calculation formula of the figure of merit (Z) was also given. The new optimization formula was compared with the classical optimization method by taking the maximum output power as the optimization index. In the case study, the temperatures of the cold end and the hot end were set at 330 K and 700 K, respectively. PbTe and PbSe were used as the materials with intermediate temperature, and Bi2Te3 was used as the material with low temperature. Through theoretical analysis, it is found that the maximum output power of the new optimization formula can be higher than that of the classical optimization formula.
考虑温度对材料影响的分段式余热热电发电机的优化设计
热电技术通常用于汽车内燃机的废热利用,并与太阳能单元广泛结合,形成太阳能热电发电系统。热电发电机(TEG)的结构需要优化,以获得更好的性能,用于更广泛的应用。本文采用改进的一维热传导模型,用微积分方法分析了温度对PN型热电臂高度的影响。同时,在考虑温度对热电材料性能影响的情况下,导出了TEG最大输出功率的计算公式和各种尺寸参数的计算公式。此外,推导了不同尺寸参数之间的关系,以获得最大效率。这些关系包括最常用的经典优化关系,即当对塞贝克系数、热导率和电阻率进行平均时,该关系与经典优化关系一致。考虑到温度对热电材料性能的影响,给出了一个改进的优值(Z)计算公式。以最大输出功率为优化指标,将新的优化公式与经典的优化方法进行了比较。在案例研究中,冷端和热端的温度分别设定为330K和700K。使用PbTe和PbSe作为具有中间温度的材料,使用Bi2Te3作为具有低温的材料。通过理论分析发现,新优化公式的最大输出功率可以高于经典优化公式。
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来源期刊
CiteScore
0.80
自引率
0.00%
发文量
152
期刊介绍: The major goal of the Journal of Computational Methods in Sciences and Engineering (JCMSE) is the publication of new research results on computational methods in sciences and engineering. Common experience had taught us that computational methods originally developed in a given basic science, e.g. physics, can be of paramount importance to other neighboring sciences, e.g. chemistry, as well as to engineering or technology and, in turn, to society as a whole. This undoubtedly beneficial practice of interdisciplinary interactions will be continuously and systematically encouraged by the JCMSE.
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